不同冲击速度下中节点落锤荷载作用下RC梁柱组合体动力响应及损伤机理

IF 5.1 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Haokun Liu , Zhong-Xian Li , Yanchao Shi , J.Y. Richard Liew
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引用次数: 0

摘要

当框架结构发生近场爆炸时,由于显著的侧向变形,柱内会产生瞬时的拉伸力。这种力向下作用在梁柱节点上,在受影响的跨度中产生冲击作用。在此背景下,本文研究了RC梁柱组合在不同冲击速度的中间节点落锤荷载作用下的动力响应和损伤机理。首先,利用落锤以两种不同的冲击速度对子组件的中间接头施加冲击载荷,冲击速度根据爆炸情景产生的冲击力和轴向拉伸力的等效性确定;在此基础上,建立了数值模型,并通过试验对模型进行了验证,然后进行了更大范围的冲击速度参数化研究。研究了冲击速度对子组合梁损伤模式和内力分布的影响,阐明了损伤机理。研究发现,在动力响应过程中,梁连续经历了局部响应和全局响应。存在区分两种不同损伤机制的临界速度。当冲击速度低于临界速度时,梁出现弯曲变形,导致局部响应阶段出现反拱作用。整体响应阶段成功出现了压缩拱作用和拉伸悬链线作用。当速度大于临界速度时,局部响应阶段梁端中部节点附近发生剪切破坏,整体响应阶段出现张链线作用。采用等效单自由度(SDOF)模型对不同冲击速度下的子装配体中关节位移峰值(MJD)进行了预测。分别提出了低于和高于临界速度的等效刚度模型。用数值模型对预测结果进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic response and damage mechanism of RC beam-column sub-assemblage under middle-joint drop-weight loading with different impact velocities
When a frame structure experiences a close-field explosion, an instantaneous tensile force may arise in the column due to significant lateral deformation. This force acts downward on the beam-column joint, generating an impact action in the affected span. Against this backdrop, this paper investigated the dynamic response and damage mechanism of an RC beam-column sub-assemblage subjected to middle-joint drop-weight loading with varying impact velocities. Firstly, a drop hammer was utilized to apply the impact load on the middle joint of the sub-assemblage with two distinct impact velocities, determined based on the equivalence of the impact force and axial tensile force induced by the blast scenarios. Then numerical model was established and validated through the test, followed by parametric studies covering a wider range of impact velocities. The study thoroughly examined the effect of impact velocity on the damage mode and internal force distribution of the beam of the sub-assemblage, elucidating the damage mechanism. It was found that in the dynamic response process, the beam got through a local response and global response in successive. There existed a critical velocity distinguishing two different damage mechanisms of the sub-assemblage. When the impact velocity was lower than the critical velocity, a flexure deformation appeared in the beam, resulting to a reverse arch action at local response stage. Compressive arch action and tensile catenary action emerged in success at global response stage. When it was higher than the critical velocity, a shear damage occurred at the beam end near middle joint at local response stage, followed by tensile catenary action at global response stage. An equivalent single degree of freedom (SDOF) model was employed to predict the peak middle joint displacement (MJD) of the sub-assemblage under different impact velocities. Two equivalent stiffness models were proposed respectively for the velocity lower and higher than the critical velocity. The prediction results were verified against the numerical model.
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来源期刊
International Journal of Impact Engineering
International Journal of Impact Engineering 工程技术-工程:机械
CiteScore
8.70
自引率
13.70%
发文量
241
审稿时长
52 days
期刊介绍: The International Journal of Impact Engineering, established in 1983 publishes original research findings related to the response of structures, components and materials subjected to impact, blast and high-rate loading. Areas relevant to the journal encompass the following general topics and those associated with them: -Behaviour and failure of structures and materials under impact and blast loading -Systems for protection and absorption of impact and blast loading -Terminal ballistics -Dynamic behaviour and failure of materials including plasticity and fracture -Stress waves -Structural crashworthiness -High-rate mechanical and forming processes -Impact, blast and high-rate loading/measurement techniques and their applications
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